Claims
- 1. A method of protecting a circuit having a first circuit breaker and a second circuit breaker downstream of said first circuit breaker, the method comprising:
detecting a fault in said circuit, said fault being downstream of said second circuit breaker; determining a dynamic delay time for opening said first circuit breaker; and opening said first circuit breaker after said dynamic delay time has elapsed.
- 2. The method of claim 1, wherein determining said dynamic delay time comprises monitoring electrical parameters of said circuit and communicating said electrical parameters over a network to a microprocessor, said microprocessor being configured to operate said first and second circuit breakers.
- 3. The method of claim 2, further comprising generating an open command by said microprocessor in response to said electrical parameters, communicating said open command from said microprocessor to a circuit breaker actuator operably connected to said second circuit breaker, and opening said second circuit breaker in response to said open command.
- 4. The method of claim 2, further comprising generating an open command by said microprocessor in response to said electrical parameters, communicating said open command from said microprocessor to a circuit breaker actuator operably connected to said first circuit breaker, and opening said first circuit breaker in response to said open command after said dynamic delay time has elapsed.
- 5. The method of claim 2, further comprising sensing said electrical parameters with a sensor, communicating signals representative of said electrical parameters to a data sample and transmission module and communicating said signals to said microprocessor, wherein said module, said sensor and said microprocessor are communicatively coupled.
- 6. The method of claim 3, further comprising detecting if said fault is cleared.
- 7. The method of claim 6, wherein detecting if said fault is cleared comprises monitoring said electrical parameters and communicating said electrical parameters over said network to said microprocessor.
- 8. The method of claim 7, further comprising opening said first circuit breaker after said dynamic delay time has elapsed if said fault is not cleared in response to opening said second circuit breaker.
- 9. A method of protecting a circuit having a first circuit breaker arranged upstream of a plurality of second circuit breakers, the method comprising:
detecting a fault in said circuit; determining a location of said fault; determining a dynamic delay time for opening said first circuit breaker based at least in part upon said location of said fault; and delaying opening said first circuit breaker until after said dynamic delay time has elapsed.
- 10. The method of claim 9, wherein determining said location of said fault comprises determining a nearest breaker upstream to said fault of said plurality of second circuit breakers, said nearest breaker being nearest to said fault and upstream of said fault.
- 11. The method of claim 9, wherein said dynamic delay time is determined by at least one control processing unit, said at least one control processing unit being in communication with said first circuit breaker and said plurality of second circuit breakers over a network, said at least one control processing unit being configured to open and close said first circuit breaker and said plurality of second circuit breakers.
- 12. The method of claim 11, wherein detecting said fault and detecting said location of said fault comprise monitoring electrical parameters of said circuit and communicating said electrical parameters over said network to said at least one control processing unit.
- 13. The method of claim 12, further comprising opening said first circuit breaker in response to said electrical parameters communicated to said at least one control processing unit.
- 14. The method of claim 12, further comprising sensing said electrical parameters with a plurality of sensors, communicating said electrical parameters to a plurality of data sample and transmission modules and communicating signals representative of said electrical parameters to said at least one control processing unit, wherein each of said modules is in communication with at least one of said first circuit breaker or said plurality of second circuit breakers, at least one of said plurality of sensors, and said at least one control processing unit.
- 15. The method of claim 10, wherein said dynamic delay time is the sum of a predefined time delay and a clearing time of said nearest breaker.
- 16. The method of claim 10, further comprising determining dynamic delay times for opening each of a plurality of third circuit breakers based at least in part on said nearest breaker, said plurality of third circuit breakers being upstream of said nearest breaker, and opening each of said plurality of third circuit breakers after said dynamic delay times have elapsed.
- 17. The method of claim 16 further comprising:
determining a state for each of said first circuit breaker, said plurality of second circuit breakers and said plurality of third circuit breakers, said state being either open or closed; and opening at least one of said plurality of third circuit breakers based at least in part on said state for each of said first circuit breaker, said plurality of second circuit breakers and said plurality of third circuit breakers.
- 18. The method of claim 16, further comprising:
determining a state for each of said first circuit breaker, said plurality of second circuit breakers and said plurality of third circuit breakers, said state being either open or closed; determining a topology of said circuit based upon said state for each of said first circuit breaker, said plurality of second circuit breakers and said plurality of third circuit breakers; and opening at least one of said first circuit breaker or said plurality of third circuit breakers based on said topology.
- 19. The method of claim 18, further comprising:
determining a change in said state for each of said first circuit breaker, said plurality of second circuit breakers and said plurality of third circuit breakers; and monitoring a change in said topology based upon said change in said state for each of said first circuit breaker, said plurality of second circuit breakers and said plurality of third circuit breakers
- 20. A protection system coupled to a circuit having a first circuit breaker arranged upstream of a plurality of second circuit breakers, the system comprising:
a network and at least one control processing unit operatively controlling said first circuit breaker and said plurality of second circuit breakers, said network being communicatively coupled to said circuit, said first circuit breaker, said plurality of second circuit breakers and said at least one control processing unit, wherein said at least one control processing unit determines a dynamic delay time for opening said first circuit breaker if a fault is detected in said circuit, and wherein said at least one control processing unit delays opening said first circuit breaker until after said dynamic delay time has elapsed.
- 21. The system of claim 20, wherein said at least one control processing unit receives parameter signals representative of electrical parameters of said circuit, and wherein said at least one control processing unit opens at least one of said second circuit breakers in response to said parameter signals if said fault is detected in said circuit.
- 22. The system of claim 21, further comprising a plurality of data sample and transmission modules and a plurality of sensors, each of said modules being in communication with at least one of said first circuit breaker or said plurality of second circuit breakers, at least one of said plurality of sensors and said at least one control processing unit, wherein said plurality of sensors sense said electrical parameters and communicate said parameter signals to said plurality of modules, and wherein said plurality of modules communicate said parameter signals to said at least one control processing unit.
- 23. The system of claim 21, further comprising a circuit breaker actuator in communication with said at least one control processing unit, wherein said circuit breaker actuator receives an actuation signal from said at least one control processing unit, said actuation signal causing said circuit breaker actuator to open said first circuit breaker after said dynamic delay time has elapsed.
- 24. The system of claim 23, wherein said at least one control processing unit determines a nearest breaker upstream to said fault of said plurality of second circuit breakers, said nearest breaker having a pre-defined delay time and a clearing time, and wherein said at least one control processing unit determines said dynamic delay time based on said pre-defined delay time and said clearing time.
- 25. The system of claim 24, wherein said at least one control processing unit selectively generates a de-actuation signal, and wherein said de-actuation signal causes said circuit breaker actuator to close said nearest breaker.
- 26. A power distribution system comprising:
a circuit having a plurality of circuit breakers, at least one power source and at least one load, said plurality of circuit breakers being arranged with at least one first circuit breaker upstream of a plurality of second circuit breakers; a network; and at least one control processing unit operatively controlling said plurality of circuit breakers, said network being communicatively coupled to said at least one control processing unit and said circuit, wherein said at least one control processing unit determines a dynamic delay time for opening said at least one first circuit breaker if a fault is detected in said circuit, and wherein said at least one control processing unit delays opening said at least one first circuit breaker until after said dynamic delay time has elapsed.
- 27. The system of claim 26, wherein said at least one control processing unit receives parameter signals representative of electrical parameters of said circuit, and wherein said dynamic delay time is selectively generated by said at least one control processing unit in response to said parameter signals if said fault is detected in said circuit.
- 28. The system of claim 27, further comprising a plurality of data sample and transmission modules and a plurality of sensors, each of said modules being in communication with at least one of said plurality of circuit breakers, at least one of said plurality of sensors and said at least one control processing unit, wherein said plurality of sensors sense said electrical parameters and communicate said parameter signals to said plurality of modules, and wherein said plurality of modules communicate said parameter signals to said at least one control processing unit.
- 29. The system of claim 27, further comprising a circuit breaker actuator in communication with said at least one control processing unit, wherein said circuit breaker actuator receives an actuation signal from said at least one control processing unit and opens said at least one first circuit breaker after said dynamic delay time has elapsed in response to said actuation signal.
- 30. The system of claim 27, wherein each of said plurality of circuit breakers has a circuit breaker actuator, wherein said at least one control processing unit determines a nearest breaker upstream to said fault of said plurality of second circuit breakers, wherein said at least one control processing unit selectively generates an actuation signal in response to said parameter signals if said fault is detected in said circuit and communicates said actuation signal to said circuit breaker actuator of said nearest breaker, and wherein said actuation signal causes said circuit breaker actuator of said nearest breaker to open said nearest breaker.
- 31. The system of claim 30, wherein said at least one control processing unit selectively generates a de-actuation signal and communicates said de-actuation signal to said circuit breaker actuator of said nearest breaker, and wherein said de-actuation signal causes said circuit breaker actuator of said nearest breaker to close said nearest breaker.
- 32. The system of claim 30, wherein said nearest breaker has a pre-defined delay time and a clearing time, and wherein said dynamic delay time is based at least in part upon said pre-defined delay time and said clearing time.
- 33. The system of claim 32, wherein said plurality of circuit breakers further comprises a plurality of third circuit breakers upstream of said at least one first circuit breaker and said nearest circuit breaker, and wherein said at least one control processing unit determines dynamic delay times for opening each of said plurality of third circuit breakers, said dynamic delay times being based at least in part on said pre-defined delay time and said clearing time of said nearest breaker.
- 34. The system of claim 33, wherein said at least one control processing unit determines a state for each of said plurality of circuit breakers, said state being either open or closed, wherein said at least one control processing unit determines a topology of said circuit based upon said state of each of said plurality of circuit breakers, and wherein said at least one control processing unit opens at least one of said plurality of third circuit breakers based on said topology.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is related to U.S. patent application Ser. No. 60/359,544 filed on Feb. 25, 2002 for “Integrated Protection, Monitoring, and Control” the contents of which are incorporated by reference herein. This application is also related to U.S. patent application Ser. No. 60/438,159 filed on Jan. 6, 2003 for “Single Processor Concept for Protection and Control of Circuit Breakers in Low-Voltage Switchgear” the contents of which are incorporated by reference herein.
Provisional Applications (2)
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Number |
Date |
Country |
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60359544 |
Feb 2002 |
US |
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60438159 |
Jan 2003 |
US |